Multi-channel microphone receiver with mixed channel
11564049 · 2023-01-24
Assignee
Inventors
Cpc classification
H04R2420/07
ELECTRICITY
International classification
Abstract
A multi-channel microphone receiver (MCR) for two or more wireless microphones (M.sub.1, . . . , M.sub.N) comprises a network interface and at least one mixer (MX) adapted for mixing audio signals (D.sub.1, . . . , D.sub.N) of the microphones. The mixer may be configured without any reconfiguration of the actual network being required. In addition to the single audio channels, the audio signal mixed according to the configuration may be output via a separate audio output channel (DO.sub.Mx, AO.sub.Mx), which may be analog or digital.
Claims
1. A multi-channel receiving system comprising a playback system in at least a first room, at least two wireless microphones in at least a first or second room adapted for transmitting a radio signal, —at least one wireless receiver in the at least one first or second room for wirelessly receiving radio signals from—the at least two wireless microphones, —a network coupled between the playback system and the at least one wireless receiver adapted for providing audio signals from the at least one wireless receiver to the playback system, —a network controller adapted for providing configuration data, —said at least one wireless receiver comprises: an audio signal extraction processor adapted for extracting from the radio signals received from the two or more wireless microphones an audio signal each, wherein the audio signals are digitized and each of the audio signals represents an audio channel; and ∘a first network output adapted for generating for each of the audio channels a network signal corresponding to a network channel for output to a network; ∘a configuration processor adapted for receiving configuration data from the network controller, storing the received configuration data and providing the received or stored configuration data to one or more other processors of the multi-channel receiving system; a mixer adapted for mixing the audio signals of at least two of the wireless microphones according to the configuration data, wherein at least one mixed audio signal is generated; ∘a second network output adapted for generating from the mixed audio signal a network signal for being output to the network, wherein the network signal generated from the mixed audio signal corresponds to a further network channel; and ∘an audio output adapted for converting the mixed audio signal into an analog signal and further adapted for providing the obtained analog signal to the audio playback system.
2. The multi-channel receiving system according to claim 1, wherein the configuration data are received via the network.
3. The multi-channel receiving system according to claim 1, wherein the network is a Dante network.
4. The multi-channel receiving system according to claim 1, wherein the configuration data are received via a first network connection and wherein power is supplied to the multi-channel microphone receiver also via the first network connection, and wherein both the individual network signals of the audio channels and the network signal generated from the mixed audio signal are output via the first network connection.
5. The multi-channel receiving system according to claim 1, wherein the configuration data are received via a first network connection and wherein power is supplied to the multi-channel microphone receiver also via the first network connection, and wherein the first network output and the second network output may be configured by means of the configuration data such that the single network signals of the audio channels and the network signal generated from the mixed audio signal are output via a separate second network connection.
6. The multi-channel receiving system according to claim 1, wherein a gain or volume may be adjusted by means of the configuration data separately for each of the audio channels and for the audio channel generated from the mixed audio signal.
7. The multi-channel receiving system according to claim 1, wherein the mixer is a first mixer adapted for mixing the audio signals of at least two of the wireless microphones according to first configuration data, the multi-channel microphone receiver further comprising a second mixer adapted for mixing the audio signals of at least two of the wireless microphones according to second configuration data, wherein the first mixer generates a first mixed audio signal from which the digital mixed audio signal is generated, and wherein the second mixer generates a second mixed audio signal from which the analog mixed audio signal is generated.
8. The multi-channel receiving system according to claim 1, wherein the first network output comprises for each audio channel a limiter adapted for limiting an output level of the respective audio channel, and wherein the second network output processor comprises an adjustable gain and a further limiter adapted for limiting an output level of the mixed audio signal.
9. A multi-channel receiving method for a multi-channel receiving system comprising: a playback system in at least a first room, at least two wireless microphones in at least a first or second room, at least one wireless receiver in the at least one first or second room for wirelessly receiving radio signals from the at least two wireless microphones, a network coupled between the playback system and the at least one wireless receiver and a network controller adapted for providing configuration data, comprising the steps of: ∘extracting from the radio signals received from the two or more wireless microphones an audio signal each, wherein the audio signals are digitized and each of the audio signals represents an audio channel; and ∘generating for each of the audio channels a network signal corresponding to a network channel for output to a network; receiving configuration data from the network controller, or storing the received configuration data and providing the received or stored configuration data to the multi-channel receiving system; mixing the audio signals of at least two of the wireless microphones according to the configuration data, wherein at least one mixed audio signal is generated; ∘generating from the mixed audio signal a network signal for being output to the network, wherein the network signal generated from the mixed audio signal corresponds to a further network channel; and ∘converting the mixed audio signal into an analog signal and further adapted for providing the obtained analog signal to the audio playback system.
10. A multi-channel receiver comprising: at least one wireless receiver for wirelessly receiving radio signals from two or more wireless microphones comprising: an audio signal extraction processor adapted for extracting from the radio signals received from the two or more wireless microphones an audio signal each, wherein the audio signals are digitized and each of the audio signals represents an audio channel; and a first network output adapted for generating for each of the audio channels a network signal corresponding to a network channel for output to a network; a configuration processor adapted for receiving configuration data, storing the received configuration data and providing the received or stored configuration data to one or more other processors of the multi-channel microphone receiver; a mixer adapted for mixing the audio signals of at least two of the wireless microphones according to the configuration data, wherein at least one mixed audio signal is generated; a second network output adapted for generating from the mixed audio signal a network signal for being output to the network, wherein the network signal generated from the mixed audio signal corresponds to a further network channel; and an audio output adapted for converting the mixed audio signal into an analog signal and further adapted for providing the obtained analog signal to an audio playback system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantageous embodiments are disclosed in the dependent claims and the following description with reference to the drawings, which show in
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
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(8) In some application scenarios, the multi-channel receiving system comprises a plurality of multi-channel receivers MCR that are located in different rooms, e.g. lecture halls, and that are each connected via radio links with a plurality of wireless microphones. An example is described below with reference to
(9) According to the invention, the problem of a potentially very high network load, or respectively a limitation of the number of audio channels transmittable in the network, may be resolved by combining a plurality of audio signals into a single audio signal or audio channel already in the multi-channel receiver MCR. A mixer MX that combines two or more audio signals D.sub.1, . . . , D.sub.N into a single audio signal may be used for this purpose. The resulting mixture signal may be fed to the network as an additional digital output channel DO.sub.Mx and may thus replace several of the corresponding audio channels D.sub.1, . . . , D.sub.N. Since these no longer have to be transported individually by the network, the network load may be reduced.
(10) As a further advantage, a separate mixing console which would be another separate network component and which thus would increase the network load and would complicate the network structure, especially in the case of several mixers, is no longer required. Instead, the users may select for each room separately whether or not mixing is desired and how to configure it. For this purpose, the user may access the mixer directly via local configuration data, without any need to modify e.g. the network configuration. The mixed audio signal is provided directly in the room, or at the multi-channel receiver respectively, for example as an analog or digital audio signal.
(11) Another advantage is that, e.g. in a Dante network, the mixed audio signal may be configured without any need to modify Dante configuration parameters, which would conventionally be required. This is because configuration parameters for the mixer, which are comprised in the configuration data, are completely independent from network configuration parameters, according to an aspect of the invention. Also the balance can now be adjusted for each audio channel separately without having to modify Dante configuration parameters. Overall, this makes the system easier to handle.
(12) A further advantage is that the complexity of the network switch NW that flexibly distributes the data streams in the network may be reduced. The reason is that, in one embodiment, not all input channels D.sub.1, . . . , D.sub.N need to be connected and routed separately anymore. Instead, several or all audio channels which may e.g. originate from a particular room can be bundled into a single audio channel by means of the mixer MX. In this manner, e.g. in a multi-channel receiver system for twenty rooms with up to four wireless microphones each, the network switch conventionally needs eighty inputs. But if e.g. in fifteen of the rooms only a single microphone is used simultaneously at any given time, according to experience, and only in five rooms several microphones are used, the network switch needs only 5×4+15=35 inputs. The assignment of the rooms to the inputs of the network switch NW is fully flexible and easy to configure.
(13) Power supply of the multi-channel receiver MCR may be done conventionally via the network, e.g. based on power-over-Ethernet (PoE). Also at least a part of the configuration data or control data Ctr may be received via the network from the network control point NWC. Alternatively, the power supply may be done from other sources, for instance an external power supply unit.
(14) Furthermore, at least a portion of the configuration data or control data Ctr may be received via a different interface, other than the network, for instance via a wireless connection such as Bluetooth or Near Field Communication (NFC) directly from a control unit that may be located in the room. This may be a wireless terminal, e.g. a smartphone. In one embodiment, the user may access the network control point NWC via a control software by means of a control device, or a smartphone respectively, and e.g. configure the mixer MX and/or other parts of the multi-channel receiver MCR. Individual audio channels D.sub.1, . . . , D.sub.N including the mixed channel DO.sub.Mx can also be switched on and off, or their gain can be adjusted, already in the multi-channel receiver MCR in this way (not shown in
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(16) Further, the multi-channel receiver MCR according to the invention comprises a mixer MX adapted for mixing the audio channels CH.sub.1, . . . , CH.sub.4 in a flexible manner. The mixed audio signal CH.sub.Mx may be output as a digital signal DO.sub.Mx via a second network output unit DG.sub.Mx to the network and/or as an analog signal AO.sub.Mx via a digital-to-analog converter DAC to a loudspeaker or a PA system, in this exemplary embodiment. The second network output unit DG.sub.Mx and/or the mixer MX may comprise an amplifier with adjustable gain. The corresponding configuration data are also provided by the configuration unit CFG. Furthermore, this example comprises limiters Lim.sub.MD, Lim.sub.MA for limiting the digital and/or analog mixed output signals. Optionally, the mixer MX or the respective network output unit may switch the output of the mixed output signals DO.sub.Mx, AO.sub.Mx on and off.
(17) As shown in
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(20) In an embodiment, the user may access a control software via his or her smartphone, using e.g. an app, in order to perform configuration of the multi-channel receiver MCR. In this case, a further advantage of the invention is that the user who is directly at the receiver or in the respective playback room has a possibility to configure the multi-channel receiver, and in particular the mixer, without having to take care of any other network parameters and without having to access or go to the network control center.
(21) As mentioned above, the invention is advantageous, among others, in application scenarios where the multi-channel receiving system comprises a plurality of multi-channel receivers MCR that are located in different rooms, e.g. lecture halls, and that are each connected via radio links with one or more wireless microphones. Further, in each of the rooms, and potentially also in additional further rooms, there are one or more loudspeakers which are configured to replay audio streams provided by the various multi-channel receivers MCR and transmitted through the network NW. In an embodiment, the multi-channel receiving system may be configured via the network control point NWC such that not only in each room the microphone signals of the microphones located in the respective room are replayed, but it is also possible to replay in each of the further rooms each of the audio channels. Likewise, additional microphones that are also connected to the network NW may be positioned in the further rooms. In this way, the additional rooms may be used as a spatial extension of the other rooms, e.g. lecture halls.
(22) An example is shown in
(23) In an embodiment, a multi-channel microphone receiver MCR comprises at least one wireless receiver RX for wirelessly receiving radio signals L.sub.1, L.sub.2, . . . , L.sub.N from two or more wireless microphones M.sub.1, M.sub.2, . . . , M.sub.N, an audio signal extraction unit ADC/Codec, RXV and a first network output unit Lim.sub.Ch. The audio signal extraction unit ADC/Codec, RXV is adapted for extracting from the radio signals received from the two or more wireless microphones an audio signal each, wherein the audio signals are digitized and each of the audio signals represents an audio channel CH.sub.1, . . . , CH.sub.4. The first network output unit Lim.sub.Ch is adapted for generating for each of the audio channels CH.sub.1, . . . , CH.sub.4 a network signal corresponding to a network channel Ch.sub.1, . . . , Ch.sub.4 for output to a network. Further, the multi-channel microphone receiver MCR comprises a configuration unit CFG adapted for receiving configuration data Ctr, storing the received configuration data and providing the received and/or stored configuration data to one or more other units of the multi-channel microphone receiver, a mixer MX adapted for mixing the audio signals of at least two of the wireless microphones according to the configuration data Ctr, wherein at least one mixed audio signal CH.sub.Mx is generated, a second network output unit DG.sub.Mx, Lim.sub.MD adapted for generating from the mixed audio signal CH.sub.Mx a network signal for being output to the network, wherein the network signal generated from the mixed audio signal corresponds to a further network channel DO.sub.Mx, and an audio output unit DAC adapted for converting the mixed audio signal CH.sub.Mx into an analog signal AO.sub.Mx and further adapted for providing the obtained analog signal to an audio playback system.
(24) It is clear that various features and embodiments as described above may be combined as appropriate.
(25) The invention is particularly advantageous for extensive audio systems in larger buildings or areas, for example in conference centers, in lecture hall buildings of universities or for campus networks covering multiple buildings.